techniques: photometric; techniques: radial velocities; satellites: individual: TOI-5005 b
Abstract :
[en] Context. The Neptunian desert and savanna have recently been found to be separated by a ridge, an overdensity of planets in the period range of ≃3–5 days. These features are thought to be shaped by dynamical and atmospheric processes. However, their roles are not yet well understood. Aims. Our aim was to confirm and characterize the super-Neptune TESS candidate TOI-5005.01, which orbits a moderately bright (V = 11.8) solar-type star (G2 V) with an orbital period of 6.3 days. With these properties, TOI-5005.01 is located in the Neptunian savanna near the ridge. Methods. We used Bayesian inference to analyse 38 HARPS radial velocity measurements, three sectors of TESS photometry, and two PEST and TRAPPIST-South transits. We tested a set of models involving eccentric and circular orbits, long-term drifts, and Gaussian processes to account for correlated stellar and instrumental noise. We computed the Bayesian evidence to find the model that best represents our dataset and infer the orbital and physical properties of the system. Results. We confirm TOI-5005 b to be a transiting super-Neptune with a radius of Rp = 6.25 ± 0.24 R⊕ (Rp = 0.558 ± 0.021 RJ) and a mass of Mp = 32.7 ± 5.9 M⊕ (Mp = 0.103 ± 0.018 MJ), which corresponds to a mean density of ρp = 0.74 ± 0.16 g cm‑3. Our internal structure modelling indicates that the core mass fraction (CMF = 0.74<SUB>‑0.45</SUB><SUP>+0.05</SUP>) and envelope metal mass fraction (Zenv = 0.08<SUB>‑0.06</SUB><SUP>+0.41</SUP>) of TOI-5005 b are degenerate, but the overall metal mass fraction is well constrained to a value slightly lower than that of Neptune and Uranus (Zplanet = 0.76<SUB>‑0.11</SUB><SUP>+0.04</SUP>). The Zplanet /Zstar ratio is consistent with the well-known mass-metallicity relation, which suggests that TOI-5005 b was formed via core accretion. We also estimated the present-day atmospheric mass-loss rate of TOI-5005 b, but found contrasting predictions depending on the choice of photoevaporation model (0.013 ± 0.008 M⊕ Gyr‑1 vs. 0.17 ± 0.12 M⊕ Gyr‑1). At a population level, we find statistical evidence (p-value = 0.0092<SUB>‑0.0066</SUB><SUP>+0.0184</SUP>) that planets in the savanna such as TOI-5005 b tend to show lower densities than planets in the ridge, with a dividing line around 1 g cm‑3, which supports the hypothesis of different evolutionary pathways populating the two regimes. Conclusions. TOI-5005 b is located in a region of the period-radius space that is key to studying the transition between the Neptunian ridge and the savanna. It orbits the brightest star of all such planets known today, which makes it a target of interest for atmospheric and orbital architecture observations that will bring a clearer picture of its overall evolution.
Disciplines :
Space science, astronomy & astrophysics
Author, co-author :
Castro-González, A.; Centro de Astrobiología, CSIC-INTA, Camino Bajo del Castillo s/n, 28692, Villanueva de la Cañada, Madrid, Spain,
Lillo-Box, J.; Centro de Astrobiología, CSIC-INTA, Camino Bajo del Castillo s/n, 28692, Villanueva de la Cañada, Madrid, Spain
Armstrong, D. J.; University of Warwick, UK, University of Warwick, Department of Physics
Acuña, L.; Max-Planck-Institute for Astronomy, Heidelberg
Aguichine, A.; University of California, Santa Cruz, Department of Astronomy and Astrophysics
Bourrier, V.; University of Geneva, Astronomical Observatory
Gandhi, S.; University of Warwick, UK
Sousa, S. G.; University of Porto, Center for Astrophysics, University of Porto, Center for Astrophysics
Delgado-Mena, E.; University of Porto, Center for Astrophysics
Moya, A.; University of Valencia, Department of Astronomy and Astrophysics
Adibekyan, V.; University of Porto, Center for Astrophysics, University of Porto, Center for Astrophysics
Correia, A. C. M.; CFisUC, Departamento de Física, Universidade de Coimbra, 3004516, Coimbra, Portugal, IMCCE, UMR8028 CNRS, Observatoire de Paris, PSL Université, 77 Av. Denfert-Rochereau, 75014, Paris, France,
Barrado, D.; Centro de Astrobiología, CSIC-INTA, Camino Bajo del Castillo s/n, 28692, Villanueva de la Cañada, Madrid, Spain,
Damasso, M.; INAF – Osservatorio Astrofisico di Torin, Via Osservatorio 20, 10025, Pino Torinese, Italy
Winn, J. N.; Princeton University, Department of Astrophysical Sciences
Santos, N. C.; University of Porto, Center for Astrophysics, University of Porto, Center for Astrophysics
Barkaoui, Khalid ; Université de Liège - ULiège > Département d'astrophysique, géophysique et océanographie (AGO) > Exoplanets in Transit: Identification and Characterization
Barros, S. C. C.; University of Porto, Center for Astrophysics, University of Porto, Center for Astrophysics
Benz, W., Broeg, C., Fortier, A., et al. 2021, Exp. Astron., 51, 109
Bernkopf, J., Fidler, A., & Fuhrmann, K. 2001, in Astronomical Society of the Pacific Conference Series, 245, Astrophysical Ages and Times Scales, ed. T. von Hippel, C. Simpson, & N. Manset, 207
Bertran de Lis, S., Delgado Mena, E., Adibekyan, V. Z., Santos, N. C., & Sousa, S. G. 2015, A&A, 576, A89
Bonomo, A. S., Sozzetti, A., Lovis, C., et al. 2014, A&A, 572, A2
Borde, P., Bouchy, F., Deleuil, M., et al. 2010, A&A, 520, A66
Bourrier, V., Lecavelier des Etangs, A., Ehrenreich, D., et al. 2018a, A&A, 620, A147
Harris, C. R., Millman, K. J., van der Walt, S. J., et al. 2020, Nature, 585, 357
Hartman, J. D., Bakos, G. A., Kipping, D. M., et al. 2011a, ApJ, 728, 138
Hartman, J. D., Bakos, G. A., Sato, B., et al. 2011b, ApJ, 726, 52
Hawthorn, F., Bayliss, D., Armstrong, D. J., et al. 2023, MNRAS, 524, 3877
Haywood, R. D., Collier Cameron, A., Queloz, D., et al. 2014, MNRAS, 443, 2517
Helled, R., Lozovsky, M., & Zucker, S. 2016, MNRAS, 455, L96
Henden, A. A., Levine, S., Terrell, D., et al. 2018, in American Astronomical Society Meeting Abstracts, 232, 223. 06
Henry, G. W., Marcy, G. W., Butler, R. P., & Vogt, S. S. 2000, ApJ, 529, L41
Hippke, M., & Heller, R. 2019, A&A, 623, A39
Hippke, M., David, T. J., Mulders, G. D., & Heller, R. 2019, AJ, 158, 143
Holman, M. J., Fabrycky, D. C., Ragozzine, D., et al. 2010, Science, 330, 51
Howard, S., & Guillot, T. 2023, A&A, 672, L1
Howard, A. W., Marcy, G. W., Bryson, S. T., et al. 2012, ApJS, 201, 15
Huang, C. X., Vanderburg, A., Pal, A., et al. 2020, RNAAS, 4, 204
Hunter, J. D. 2007, Comput. Sci. Eng., 9, 90
Husser, T. O., Wende-von Berg, S., Dreizler, S., et al. 2013, A&A, 553, A6
Jeffreys, H. 1961, The Theory of Probability, 3rd edn. (Oxford University Press)
Jehin, E., Gillon, M., Queloz, D., et al. 2011, The Messenger, 145, 2
Jenkins, J. M. 2002, ApJ, 575, 493
Jenkins, J. M., Twicken, J. D., McCauliff, S., et al. 2016, SPIE Conf. Ser., 9913, 99133E
Jenkins, J. M., Tenenbaum, P., Seader, S., et al. 2020, Kepler Data Processing Handbook: Transiting Planet Search, Kepler Science Document KSCI-19081-003
Jensen, E. 2013, Tapir: A web interface for transit/eclipse observability, Astrophysics Source Code Library [record ascl:1306. 007]
Jordan, A., Bakos, G. A., Bayliss, D., et al. 2020, AJ, 160, 222
Kempton, E. M. R., Bean, J. L., Louie, D. R., et al. 2018, PASP, 130, 114401
Kipping, D. M. 2013, MNRAS, 435, 2152
Kreidberg, L. 2015, PASP, 127, 1161
Kubyshkina, D. I., & Fossati, L. 2021, RNAAS, 5, 74
Kubyshkina, D., Fossati, L., Erkaev, N. V., et al. 2018, A&A, 619, A151
Kunimoto, M., Daylan, T., Guerrero, N., et al. 2022, ApJS, 259, 33
Kunimoto, M., Vanderburg, A., Huang, C. X., et al. 2023, AJ, 166, 7
Kurokawa, H., & Nakamoto, T. 2014, ApJ, 783, 54
Kurucz, R. L. 1993, SYNTHE spectrum synthesis programs and line data
Lee, E. J. 2019, ApJ, 878, 36
Lee, E. J., & Chiang, E. 2015, ApJ, 811, 41
Li, J., Tenenbaum, P., Twicken, J. D., et al. 2019, PASP, 131, 024506
Lightkurve Collaboration (Cardoso, J. V. d. M., et al.) 2018, Lightkurve: Kepler and TESS time series analysis in Python, Astrophysics Source Code Library [record ascl:1812. 013]
Lillo-Box, J., Figueira, P., Leleu, A., et al. 2020, A&A, 642, A121
Lillo-Box, J., Faria, J. P., Suarez Mascareno, A., et al. 2021, A&A, 654, A60
Lillo-Box, J., Santos, N. C., Santerne, A., et al. 2022, A&A, 667, A102
Lillo-Box, J., Gandolfi, D., Armstrong, D. J., et al. 2023, A&A, 669, A109
Lin, D. N. C., Bodenheimer, P., & Richardson, D. C. 1996, Nature, 380, 606
Livingston, J. H., Crossfield, I. J. M., Petigura, E. A., et al. 2018, AJ, 156, 277
Lopez, E. D., & Fortney, J. J. 2014, ApJ, 792, 1
Lovis, C., Dumusque, X., Santos, N. C., et al. 2011, arXiv e-prints [arXiv:1107. 5325]
Lundkvist, M. S., Kjeldsen, H., Albrecht, S., et al. 2016, Nat. Commun., 7, 11201
Lyon, S. P. 1992, Los Alamos National Laboratory report LA-UR-92-3407
Malavolta, L., Mayo, A. W., Louden, T., et al. 2018, AJ, 155, 107
Mamajek, E. E., & Hillenbrand, L. A. 2008, ApJ, 687, 1264
Mandel, K., & Agol, E. 2002, ApJ, 580, L171
Mayor, M., & Queloz, D. 1995, Nature, 378, 355
Mayor, M., Pepe, F., Queloz, D., et al. 2003, The Messenger, 114, 20
Mazevet, S., Licari, A., Chabrier, G., & Potekhin, A. Y. 2019, A&A, 621, A128
McArthur, B. E., Endl, M., Cochran, W. D., et al. 2004, ApJ, 614, L81
Middelkoop, F. 1982, A&A, 107, 31
Miguel, Y., & Vazan, A. 2023, Remote Sensing, 15, 681
Miguel, Y., Bazot, M., Guillot, T., et al. 2022, A&A, 662, A18
Mistry, P., Pathak, K., Lekkas, G., et al. 2023, MNRAS, 521, 1066
Molliere, P., van Boekel, R., Dullemond, C., Henning, T., & Mordasini, C. 2015, ApJ, 813, 47
Molliere, P., van Boekel, R., Bouwman, J., et al. 2017, A&A, 600, A10
Mordasini, C., Mayor, M., Udry, S., et al. 2011, A&A, 526, A111
Mordasini, C., Molliere, P., Dittkrist, K. M., Jin, S., & Alibert, Y. 2015, Int. J. Astrobiol., 14, 201
Morris, R. L., Twicken, J. D., Smith, J. C., et al. 2020, Kepler Data Processing Handbook: Photometric Analysis, Kepler Science Document KSCI-19081-003
Mousis, O., Deleuil, M., Aguichine, A., et al. 2020, ApJ, 896, L22
Moya, A., Sarro, L. M., Delgado-Mena, E., et al. 2022, A&A, 660, A15
Murgas, F., Castro-Gonzalez, A., Palle, E., et al. 2023, A&A, 677, A182
Naoz, S., Farr, W. M., & Rasio, F. A. 2012, ApJ, 754, L36
Nelson, B. E., Ford, E. B., & Rasio, F. A. 2017, AJ, 154, 106
Osborn, A., Armstrong, D. J., Fernandez Fernandez, J., et al. 2023, MNRAS, 526, 548
Owen, J. E., & Alvarez, M. A. 2016, ApJ, 816, 34
Owen, J. E., & Lai, D. 2018, MNRAS, 479, 5012
Owen, J. E., & Wu, Y. 2013, ApJ, 775, 105
Owen, J. E., & Wu, Y. 2016, ApJ, 817, 107
Owen, J. E., & Wu, Y. 2017, ApJ, 847, 29
Pagano, I., Lanza, A. F., Leto, G., et al. 2009, Earth Moon Planets, 105, 373
Parviainen, H., & Aigrain, S. 2015, MNRAS, 453, 3821
Patel, J. A., & Espinoza, N. 2022, AJ, 163, 228
Pepe, F., Mayor, M., Galland, F., et al. 2002, A&A, 388, 632
Perrakis, K., Ntzoufras, I., & Tsionas, E. G. 2014, Computat. Statist. Data Anal., 77, 54
Polanski, A. S., Lubin, J., Beard, C., et al. 2024, ApJS, 272, 32
Pollack, J. B., Hubickyj, O., Bodenheimer, P., et al. 1996, Icarus, 124, 62
Quirrenbach, A., Amado, P. J., Caballero, J. A., et al. 2016, SPIE Conf. Ser., 9908, 990812
Rafikov, R. R. 2006, ApJ, 648, 666
Rasmussen, C. E., & Williams, C. K. I. 2006, Gaussian Processes for Machine Learning
Ratcliffe, B., Minchev, I., Cescutti, G., et al. 2024, MNRAS, 528, 3464
Ricker, G. R., Winn, J. N., Vanderspek, R., et al. 2014, SPIE Conf. Ser., 9143, 914320
Robin, A. C., Reyle, C., Derriere, S., & Picaud, S. 2003, A&A, 409, 523
Salz, M., Czesla, S., Schneider, P. C., & Schmitt, J. H. M. M. 2016, A&A, 586, A75
Santos, N. C., Mayor, M., Naef, D., et al. 2000, A&A, 356, 599
Santos, N. C., Udry, S., Mayor, M., et al. 2003, A&A, 406, 373
Santos, N. C., Sousa, S. G., Mortier, A., et al. 2013, A&A, 556, A150
Sanz-Forcada, J., Micela, G., Ribas, I., et al. 2011, A&A, 532, A6
Shkolnik, E., Walker, G. A. H., & Bohlender, D. A. 2003, ApJ, 597, 1092
Shkolnik, E., Walker, G. A. H., Bohlender, D. A., Gu, P. G., & Kurster, M. 2005, ApJ, 622, 1075
Shkolnik, E., Bohlender, D. A., Walker, G. A. H., & Collier Cameron, A. 2008, ApJ, 676, 628
Siverd, R. J., Beatty, T. G., Pepper, J., et al. 2012, ApJ, 761, 123
Skrutskie, M. F., Cutri, R. M., Stiening, R., et al. 2006, AJ, 131, 1163
Smith, J. C., Stumpe, M. C., Van Cleve, J. E., et al. 2012, PASP, 124, 1000
Sneden, C. A. 1973, PhD thesis, The University of Texas at Austin, USA
Sousa, S. G. 2014, Determination of Atmospheric Parameters of B, eds. N. Ewa, S. Barry, & P. Wojtek, 297 https://doi. org/10. 1007/ 978-3-319-06956-2_26
Sousa, S. G., Santos, N. C., Israelian, G., Mayor, M., & Monteiro, M. J. P. F. G. 2007, A&A, 469, 783
Sousa, S. G., Santos, N. C., Mayor, M., et al. 2008, A&A, 487, 373
Sousa, S. G., Santos, N. C., Adibekyan, V., Delgado-Mena, E., & Israelian, G. 2015, A&A, 577, A67
Sousa, S. G., Adibekyan, V., Delgado-Mena, E., et al. 2021, A&A, 656, A53
Sozzetti, A., Torres, G., Charbonneau, D., et al. 2007, ApJ, 664, 1190
Stassun, K. G., Oelkers, R. J., Pepper, J., et al. 2018, AJ, 156, 102
Stassun, K. G., Oelkers, R. J., Paegert, M., et al. 2019, AJ, 158, 138
Stumpe, M. C., Smith, J. C., Van Cleve, J. E., et al. 2012, PASP, 124, 985
Stumpe, M. C., Smith, J. C., Catanzarite, J. H., et al. 2014, PASP, 126, 100
Suarez Mascareno, A., Rebolo, R., & Gonzalez Hernandez, J. I. 2016, A&A, 595, A12
Suarez Mascareno, A., Faria, J. P., Figueira, P., et al. 2020, A&A, 639, A77
Suzuki, D., Bennett, D. P., Sumi, T., et al. 2016, ApJ, 833, 145
Swarup, G. 1991, in Astronomical Society of the Pacific Conference Series, 19, IAU Colloq. 131: Radio Interferometry. Theory, Techniques, and Applications, eds. T. J. Cornwell, & R. A. Perley, 376-380
Szabo, G. M., & Kiss, L. L. 2011, ApJ, 727, L44
Thorngren, D., & Fortney, J. J. 2019, ApJ, 874, L31
Thorngren, D. P., Fortney, J. J., Murray-Clay, R. A., & Lopez, E. D. 2016, ApJ, 831, 64